Enhanced Privacy Leakage from Noise-Perturbed Gradients via Gradient-Guided Conditional Diffusion Models

Authors

  • Jiayang Meng Renmin University of China
  • Tao Huang Minjiang University
  • Hong Chen Renmin University of China
  • Chen Hou Minjiang University
  • Guolong Zheng Minjiang University

DOI:

https://doi.org/10.1609/aaai.v40i10.37743

Abstract

Federated learning synchronizes models through gradient transmission and aggregation. However, these gradients pose significant privacy risks, as sensitive training data is embedded within them. Existing gradient inversion attacks suffer from significantly degraded reconstruction performance when gradients are perturbed by noise-a common defense mechanism. In this paper, we introduce gradient-guided conditional diffusion models for reconstructing private images from leaked gradients, without prior knowledge of the target data distribution. Our approach leverages the inherent denoising capability of diffusion models to circumvent the partial protection offered by noise perturbation, thereby improving attack performance under such defenses. We further provide a theoretical analysis of the reconstruction error bounds and the convergence properties of the attack loss, characterizing the impact of key factors—such as noise magnitude and attacked model architecture—on reconstruction quality. Extensive experiments demonstrate our attack's superior reconstruction performance with Gaussian noise-perturbed gradients, and confirm our theoretical findings.

Published

2026-03-14

How to Cite

Meng, J., Huang, T., Chen, H., Hou, C., & Zheng, G. (2026). Enhanced Privacy Leakage from Noise-Perturbed Gradients via Gradient-Guided Conditional Diffusion Models. Proceedings of the AAAI Conference on Artificial Intelligence, 40(10), 7981–7989. https://doi.org/10.1609/aaai.v40i10.37743

Issue

Section

AAAI Technical Track on Computer Vision VII